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  1. 原著論文

Supramolecular Conductive Hydrogels With Homogeneous Ionic and Electronic Transport

https://repo.qst.go.jp/records/2001809
https://repo.qst.go.jp/records/2001809
dcdb1f38-fa9d-43e4-91d4-9b7f184c962f
アイテムタイプ 学術雑誌論文 / Journal Article(1)
公開日 2025-06-11
タイトル
タイトル Supramolecular Conductive Hydrogels With Homogeneous Ionic and Electronic Transport
言語 ja
言語
言語 jpn
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_6501
資源タイプ journal article
著者 Stephen J.K. O'Neill

× Stephen J.K. O'Neill

Stephen J.K. O'Neill

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Minoru Ashizawa

× Minoru Ashizawa

Minoru Ashizawa

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Alan M. McLean

× Alan M. McLean

Alan M. McLean

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Ruben Ruiz-Mateos Serrano

× Ruben Ruiz-Mateos Serrano

Ruben Ruiz-Mateos Serrano

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Tokihiko Shimura

× Tokihiko Shimura

Tokihiko Shimura

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揚妻 正和

× 揚妻 正和

揚妻 正和

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Motosuke Tsutsumi

× Motosuke Tsutsumi

Motosuke Tsutsumi

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Tomomi Nemoto

× Tomomi Nemoto

Tomomi Nemoto

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Christopher D. J. Parmenter

× Christopher D. J. Parmenter

Christopher D. J. Parmenter

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Jade A. McCune

× Jade A. McCune

Jade A. McCune

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George G. Malliaras

× George G. Malliaras

George G. Malliaras

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Naoji Matsuhisa

× Naoji Matsuhisa

Naoji Matsuhisa

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Oren A. Scherman

× Oren A. Scherman

Oren A. Scherman

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内容記述タイプ Abstract
内容記述 Mechanically resilient hydrogels with ion-electron mixed transport properties effectively bridge biology with electronics. An ideal bioelectronic interface can be realized through introducing electronically conductive polymers into supramolecular hydrogels. However, inhomogeneous morphologies of conducting polymers, such as poly(3,4-ethylenedioxythiophene):poly(styrene sulfonate) (PEDOT:PSS), have limited mechanical properties and ion-electron interactions. Here, supramolecular conductive hydrogels that possess homogeneous ionic and electronic transport are achieved. The materials demonstrate high toughness (620 kJ m−3), stretchability (>1000%), softness (10.5 kPa), and conductivity (5.8 S cm−1), which surpasses commonly used inhomogeneous PEDOT:PSS-based hydrogels. The homogeneous network leads to higher charge injection capacitance and lower skin impedance compared to commercial electrodes or commonly used inhomogeneous PEDOT:PSS conducting networks. This significant advance arises from the homogeneous incorporation of the hydrophilic self-doped conducting polymer S-PEDOT, which has polymerized within a supramolecular polymer network template mediated by high-binding affinity host-guest crosslinks. Furthermore, the compatibility of S-PEDOT with hydrophilic secondary networks enables the realization of fully dryable and reswellable electronic devices, facilitating reusability and improving their ease of handling. It is anticipated that achieving such material architectures will offer a promising new direction in future synthesis and implementation of conductive hydrogels in the field of bioelectronics.
書誌情報 Advanced Materials

p. 2415687, 発行日 2025-04
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